<p>Ecosystems and people are in danger from organic dye contamination in water bodies, which calls for creative approaches to water purification. Using a straightforward co-precipitation technique, we synthesized a new copper-doped cobalt ferrite composite with sulfur-doped graphitic carbon nitride (Cu@CoFe<sub>2</sub>O<sub>4</sub>/S-g-C<sub>3</sub>N<sub>4</sub>) heterojunction nanocomposite in this work. The composite was systematically characterized using XRD, FTIR, BET surface area analysis, SEM, TEM, UV-Vis DRS, and PL spectroscopy to reveal its structural and optical properties. BET analysis confirmed a surface area of 85.4&#xa0;m²/g, contributing to improved photocatalytic action. The photocatalytic efficiency was assessed using methylene blue (MB) as a model pollutant under solar radiation. Among the synthesized materials, the optimized Cu@CoFe<sub>2</sub>O<sub>4</sub>/S-g-C<sub>3</sub>N<sub>4</sub> NC demonstrated outstanding performance, achieving 97% degradation of MB within 120&#xa0;min, with a degradation rate constant of 0.032&#xa0;min⁻¹, approximately 3.5 times higher than pristine g-C<sub>3</sub>N<sub>4</sub> (0.009&#xa0;min⁻¹) and 2.8 times higher than Cu@CoFe<sub>2</sub>O<sub>4</sub> (0.011&#xa0;min⁻¹). The effective charge carrier separation made possible by the heterojunction interface and the enhanced light absorption brought about by the combined effects of Cu doping and the integration of CoFe<sub>2</sub>O<sub>4</sub> and S-g-C<sub>3</sub>N<sub>4</sub> are responsible for this astonishing improvement. Stability and reusability tests confirmed the Nanocomposite retained 91.6% of its photocatalytic efficiency after five cycles, highlighting its robustness and potential for long-term application. The cost-effectiveness, environmental compatibility, and scalability of the Cu@CoFe<sub>2</sub>O<sub>4</sub> /S-g-C<sub>3</sub>N<sub>4</sub> make it a favorable intranet for industrial wastewater treatment. The highest antifungal activities of Cu@CoFe<sub>2</sub>O<sub>4</sub> /S-g-C<sub>3</sub>N<sub>4</sub> were estimated to be 36.7&#xa0;mm, 39.4&#xa0;mm, and 43.3&#xa0;mm versus <i>C. gloeosporioides</i>,<i> E. salmonicolor and C. albicans</i>, respectively. This study underscores the potential of heterojunction-based photocatalysts in sustainable water purification, providing a pathway for tackling organic dye pollution. Future research will focus on extending this approach to address other emerging organic contaminants, further advancing global efforts in environmental remediation.</p>

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Sustainable Cu@CoFe2O4/SGCN Heterojunction Photocatalysts for Solar-Driven Degradation of Methylene Blue and Antifungal Potential

  • Ahmad Alhujaily,
  • Adnan Amjad,
  • Inam Ullah,
  • Mohsin Javed,
  • Namrah Zaka,
  • Urwa Arshad,
  • Syed Kashif Ali,
  • Ali Bahadur,
  • Shahid Iqbal,
  • Sajid Mahmood,
  • Ibrahim Jafri,
  • Abd-ElAziem Farouk

摘要

Ecosystems and people are in danger from organic dye contamination in water bodies, which calls for creative approaches to water purification. Using a straightforward co-precipitation technique, we synthesized a new copper-doped cobalt ferrite composite with sulfur-doped graphitic carbon nitride (Cu@CoFe2O4/S-g-C3N4) heterojunction nanocomposite in this work. The composite was systematically characterized using XRD, FTIR, BET surface area analysis, SEM, TEM, UV-Vis DRS, and PL spectroscopy to reveal its structural and optical properties. BET analysis confirmed a surface area of 85.4 m²/g, contributing to improved photocatalytic action. The photocatalytic efficiency was assessed using methylene blue (MB) as a model pollutant under solar radiation. Among the synthesized materials, the optimized Cu@CoFe2O4/S-g-C3N4 NC demonstrated outstanding performance, achieving 97% degradation of MB within 120 min, with a degradation rate constant of 0.032 min⁻¹, approximately 3.5 times higher than pristine g-C3N4 (0.009 min⁻¹) and 2.8 times higher than Cu@CoFe2O4 (0.011 min⁻¹). The effective charge carrier separation made possible by the heterojunction interface and the enhanced light absorption brought about by the combined effects of Cu doping and the integration of CoFe2O4 and S-g-C3N4 are responsible for this astonishing improvement. Stability and reusability tests confirmed the Nanocomposite retained 91.6% of its photocatalytic efficiency after five cycles, highlighting its robustness and potential for long-term application. The cost-effectiveness, environmental compatibility, and scalability of the Cu@CoFe2O4 /S-g-C3N4 make it a favorable intranet for industrial wastewater treatment. The highest antifungal activities of Cu@CoFe2O4 /S-g-C3N4 were estimated to be 36.7 mm, 39.4 mm, and 43.3 mm versus C. gloeosporioides, E. salmonicolor and C. albicans, respectively. This study underscores the potential of heterojunction-based photocatalysts in sustainable water purification, providing a pathway for tackling organic dye pollution. Future research will focus on extending this approach to address other emerging organic contaminants, further advancing global efforts in environmental remediation.